Impact of platinum doping on the structural, cation distribution, electrical and dielectric properties of CoZn nanospinel oxides

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Elsevier Science Sa

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info:eu-repo/semantics/closedAccess

Özet

This study explores the structural and electrochemical properties of Pt-doped cobalt-zinc nanospinel oxides (Co0 & sdot;5Zn0 & sdot;5Pt3xAl2-4xO4 NSOs, 0.00 <= x <= 0.10) synthesized via a sol-gel combustion route, with a focus on tunable electrical behavior for energy-related applications. Phase-pure spinel formation was confirmed by XRD, while SEM/EDX analyses verified nanoscale morphology and composition. Systematic investigation of frequency-and temperature-dependent conductivity, dielectric, and impedance responses revealed that moderate Pt substitution (x approximate to 0.02-0.06) significantly enhances charge mobility through defect-assisted transport, while higher substitution levels introduce additional relaxation phenomena and interfacial polarization. Modulus and Cole-Cole analyses confirmed a transition from Debye-to non-Debye-type relaxation, indicating a compositional control of grain and grain boundary contributions. These findings demonstrate that Pt doping provides a strategy for tuning electrical heterogeneity and dielectric response in CoZn-Al spinels, making them promising candidates for energy storage devices and sensing applications.

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Anahtar Kelimeler

Nanospinel oxides, Conductivity, Dielectric properties, Cole-cole study, Cation distribution

Kaynak

Materials Chemistry And Physics

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348

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Onay

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